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Strengthening damaged reinforced concrete beams and slender columns using ultra-high modulus CFRP plates.

机译:使用超高模量CFRP板加固受损的钢筋混凝土梁和细长柱。

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摘要

This thesis investigates the application of ultra-high modulus carbon fiber reinforced polymer (CFRP) plates to strengthen damaged reinforced concrete beams and slender columns. In the first phase, two different pre-repair loading histories were simulated in seven 3000x300x150 mm reinforced concrete beams, namely cracking within the elastic range, and overloading in the plastic range. After unloading, the beams were repaired with either high- or ultra-high modulus (210 or 400 GPa) CFRP plates, or a hybrid system, and then reloaded to failure. It was shown that the level of pre-existing damage has an insignificant effect on the strengthening effectiveness and the failure mode at ultimate. The 210 and 400 GPa CFRP of reinforcement ratio rhof = 0.17% increased the ultimate strength by up to 29 and 51%, respectively, despite the 40% lower tensile strength of the 400 GPa CFRP, due to the change in failure mode from debonding to rupture. Doubling rhof of the 400 GPa CFRP to 0.34% resulted in a 63% overall gain in flexural strength, only 8% increase in ultimate strength over rhof = 0.17%, due to change in failure mode from rupture to concrete cover delamination. The beam retrofitted by hybrid CFRP showed remarkable pseudo ductility and warning signs before failure. However, a parametric study revealed a critical balance in proportioning the areas of hybrid CFRP to achieve reliable pseudo ductility. In the beam with rhof = 0.34%, this was achieved using a maximum of 30% rhof of the 400 GPa CFRP. The second phase of this thesis presents an analytical model developed by modifying the provisions of the ACI 318-08 code and employing the computer software Response 2000, to predict the performance of CFRP strengthened slender reinforced concrete columns. Response 2000 is used to establish the interaction curve while the modified ACI 318-08 code is used to acquire the slender column loading path to failure including the second order effects. The model predicts that the effectiveness of the FRP strengthening system increases as the slenderness ratio and FRP reinforcement ratio increase.
机译:本文研究了超高模量碳纤维增强聚合物(CFRP)板在加固受损钢筋混凝土梁和细长柱中的应用。在第一阶段,在七个3000x300x150 mm的钢筋混凝土梁中模拟了两种不同的维修前荷载历史,即在弹性范围内开裂和在塑性范围内超载。卸载后,用高模量或超高模量(210或400 GPa)CFRP板或混合系统修复梁,然后重新加载至失效。结果表明,预先存在的破坏程度对加强效果和最终的破坏模式影响不大。 210和400 GPa CFRP的增强比rhof = 0.17%,尽管将400 GPa CFRP的抗拉强度降低了40%,但由于破坏模式从脱粘到破裂。将400 GPa CFRP的Rhof加倍至0.34%,导致抗弯强度总体提高63%,而最终强度仅比Rhof = 0.17%高8%,这是由于破坏模式从破裂变为混凝土外层分层所致。混合CFRP改造后的梁表现出明显的伪延性和失效前的警告信号。但是,一项参数研究显示,在按比例混合CFRP区域以实现可靠的伪延展性方面存在关键的平衡。在rhof = 0.34%的光束中,这是使用最大400 GPa CFRP的30%rhof来实现的。本文的第二阶段提出了一种分析模型,该模型是通过修改ACI 318-08代码的规定并使用计算机软件Response 2000开发的,以预测CFRP加固的细长钢筋混凝土柱的性能。响应2000用于建立交互作用曲线,而修改后的ACI 318-08代码用于获取到包括第二阶效应的细长柱加载路径。该模型预测,随着细长比和FRP增强比的增加,FRP增强系统的有效性也会提高。

著录项

  • 作者

    Richardson, Tim.;

  • 作者单位

    Queen's University (Canada).;

  • 授予单位 Queen's University (Canada).;
  • 学科 Engineering Civil.
  • 学位 M.S.
  • 年度 2013
  • 页码 75 p.
  • 总页数 75
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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